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1,918 results for “molecular evidence”
FIGURE 3 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 3. Russula bubalina (Holotype GDGM70728). a. Basidia; b. Cheilocystidia; c. Pleurocystidia; d. Pileipellis; e. Pileocystidia; f. Caulocystidia. Scale bars= 10 μm.
FIGURE 4 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 4. Russula pseudobubalina (Holotype GDGM70632). a. Basidia; b. Cheilocystidia; c. Pleurocystidia; d. Pileipellis; e. Pileocystidia; f. Caulocystidia. Scale bars= 10 μm.
FIGURE 2 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 2. Scanning Electronic Micrographs and photographs of fruiting bodies. a–c. Russula bubalina (Holotype GDGM70728); d–f. Russula pseudobubalina (Holotype GDGM70632). Scale bars: a, d= 1 cm; b–c, e–f= 10 μm.
FIGURE 5. Cymbidium shidianense. A. Flowering plant. B. Flower, front view. C. Flower, side view. D. Flower, back view. E–F. Pollinium. G–H in Cymbidium shidianense (Orchidaceae: Epidendroideae), a new species from China: evidence from morphology and molecular data
FIGURE 5. Cymbidium shidianense. A. Flowering plant. B. Flower, front view. C. Flower, side view. D. Flower, back view. E–F. Pollinium. G–H. Pollinarium.
FIGURE 2 in Cymbidium shidianense (Orchidaceae: Epidendroideae), a new species from China: evidence from morphology and molecular data
FIGURE 2. Phylogenetic relationships of C. shidianense based on the combined plastid DNA. The numbers near the nodes are Maximum likelihood bootstrap percentages (BP ML), Bayesian posterior probabilities (PP), and maximum parsimony bootstrap percentages (BP MP). "*" indicates that the node has BP 100 or PP 1.0. "-" indicates that the node is incongruent between the topology of the ML tree and the Bayesian/ MP trees.
FIGURE 1 in Cymbidium shidianense (Orchidaceae: Epidendroideae), a new species from China: evidence from morphology and molecular data
FIGURE 1. Phylogenetic relationships of C. shidianense based on the combined plastid and nuclear data. The numbers near the nodes are Maximum likelihood bootstrap percentages (BP ML), Bayesian posterior probabilities (PP), and maximum parsimony bootstrap percentages (BP MP). "*" indicates that the node has BP 100 or PP 1.0. "-" indicates that the node is incongruent between the topology of the ML tree and the Bayesian/ MP trees.
FIGURE 4. Cymbidium shidianense. A. Flowering plant. B. Flower, front view. C. Flower, side view. D. Petal. E–F. Lateral sepal. G. Lip. H in Cymbidium shidianense (Orchidaceae: Epidendroideae), a new species from China: evidence from morphology and molecular data
FIGURE 4. Cymbidium shidianense. A. Flowering plant. B. Flower, front view. C. Flower, side view. D. Petal. E–F. Lateral sepal. G. Lip. H. Pollinarium.
FIGURE 3 in Cymbidium shidianense (Orchidaceae: Epidendroideae), a new species from China: evidence from morphology and molecular data
FIGURE 3. Phylogenetic relationships of C. shidianense based on the nuclear DNA (ITS). The numbers near the nodes are Maximum
FIGURE 2 in Morphological and molecular evidence of Turkish Minuartiella species (Caryophyllaceae), with a desciption of a new species and a proposal for a new combination
FIGURE 2. Minuartiella serpentinicola: (A) habit, (B) cyme, (C) bract, (D) sepal, (E) petal, (F) gland, (G) capsule.
FIGURE 4 in Morphological and molecular evidence of Turkish Minuartiella species (Caryophyllaceae), with a desciption of a new species and a proposal for a new combination
FIGURE 4. SEM photographs of the seed coat. (A) Minuartiella serpentinicola, (B) M. pestalozzae. Scale bars: 200 mm (A1, and B1), 100 mm (A2, and B2), 10 mm (A3, and B3).
FIGURE 1 in Morphological and molecular evidence of Turkish Minuartiella species (Caryophyllaceae), with a desciption of a new species and a proposal for a new combination
FIGURE 1. Molecular phylogenetic reconstruction by maximum likelihood method based on ITS sequences showing the relationships of Minuartiella serpentinicola sp. nov. and other Minuartiella species.
FIGURE 3 in Morphological and molecular evidence of Turkish Minuartiella species (Caryophyllaceae), with a desciption of a new species and a proposal for a new combination
FIGURE 3. Minuartiella serpentinicola: A1 (habit), B1 (inflorescence); M. pestalozzae: A2 (habit), B2 (inflorescence).
FIGURE 5 in Apios chendezhaoana (Fabaceae), an overlooked species and a new combination from China: evidence from morphological and molecular analyses
FIGURE 5. Floral comparison of Apios species: (A) A. carnea from Hunan, China, courtesy of Lei Wu; (B) A. fortunei from Hunan, China, photographed by Fan Zhang; (C) A. delvavayi var. delavayi from Sichuan, China, courtesy of Ang Liu; (D–E) A. delavayi var. pteridietorum. (D) from Chayu, Xizang, China, courtesy of Chun-Mei He. (E) from Gongshan, Yunnan, China, courtesy of Bin Chen; (F) A. americana, from Washington, United States, courtesy of Adam J. Peterson; (G) A. priceana, from Maryland, United States, courtesy of Alan Cressler.
FIGURE 2 in Apios chendezhaoana (Fabaceae), an overlooked species and a new combination from China: evidence from morphological and molecular analyses
FIGURE 2. Apios chendezhaoana (Y.K. Yang, L.H. Liu & J.K. Wu) Bo Pan (Ñṻ), Xun-Lin Yu & Fan Zhang, comb. nov. (A) Flowering branch; (B) Leaves with 5-leaflets; (C) Flower; (D) Unopened flower; (E) Standard; (F) Wings; (G) Keel; (H) Stamens; (I) Calyx & pistil; (J) Pod; (K) Seed. Illustrated by Lin-Han Liu, from the type—CHINA. Hunan: Yanling, Pikeng forestry station, 30 July 1973, Barcode 18447, labelled 'Dunbaria hunanica sp. nov. ined.', Lin-Han Liu 11227 (HNNU).
FIGURE 3 in Apios chendezhaoana (Fabaceae), an overlooked species and a new combination from China: evidence from morphological and molecular analyses
FIGURE 3. Apios chendezhaoana. (A) Habit; (B) Flowering branch; (C) Flower; (D) Standard; (E) Wings; (F) Keel; (G) Flower with petals removed; (H) Stamens; (I) Calyx; (J) Stipule; (K) Fruiting branch; (L) Tuber; (M) Young fruit; (N) Stigma. Photographed by Fan Zhang.
FIGURE 1. The 50 in Apios chendezhaoana (Fabaceae), an overlooked species and a new combination from China: evidence from morphological and molecular analyses
FIGURE 1. The 50% majority rule consensus tree resulting from Bayesian analysis of the combination of ITS and matK. Numbers near the nodes are posterior probabilities and bootstrap percentage (PP, BP) from Bayesian analysis and Maximum likelihood, respectively. A dash (--) indicates a node is inconsistent between the topology of the BI and ML trees. The new combination (species) in this study is shown in bold type.
FIGURE 12 in Morphological, cytological, palynological and molecular evidence on two new hybrids from Turkey: an example of homoploid hybridization in Origanum (Lamiaceae)
FIGURE 12. Neighbour-Net splits graph (rooted equal angle diagram) (left side) and phylogram (right side) showing the positions of the new hybrids based on nrITS sequences
FIGURE 11 in Morphological, cytological, palynological and molecular evidence on two new hybrids from Turkey: an example of homoploid hybridization in Origanum (Lamiaceae)
FIGURE 11. Metaphase chromosomes of: A, O. vulgare subsp. hirtum (Dirmenci 4507); B, O. ×sevcaniae (Dirmenci 4508); C, O. vogelii (Dirmenci 4509).
FIGURE 10 in Morphological, cytological, palynological and molecular evidence on two new hybrids from Turkey: an example of homoploid hybridization in Origanum (Lamiaceae)
FIGURE 10. Metaphase chromosomes of: A, O. boissieri (Dirmenci 4501); B, O. vulgare subsp. hirtum (Dirmenci 4500).
FIGURE 9 in Morphological, cytological, palynological and molecular evidence on two new hybrids from Turkey: an example of homoploid hybridization in Origanum (Lamiaceae)
FIGURE 9. SEM micrographs of investigated taxa. O. ×sevcaniae (A–D), O. vogelii (E–H) and O. vulgare subsp. hirtum (I–L). Mesocolpium and colpi (A, E, I), apocolpial area (B, F, J), exine surface (C, G, K), pollen grains with different size (D, H, L).
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.